English

The case for a minute-long merger-driven gamma-ray burst from fast-cooling synchrotron emission

High Energy Astrophysical Phenomena 2022-12-15 v2

Abstract

For decades, gamma-ray bursts (GRBs) have been broadly divided into `long'- and `short'-duration bursts, lasting more or less than 2s, respectively. However, this dichotomy does not map perfectly to the two progenitor channels that are known to produce GRBs -- the merger of compact objects (merger-GRBs) or the collapse of massive stars (collapsar-GRBs). In particular, the merger-GRBs population may also include bursts with a short, hard \lesssim2s spike and subsequent longer, softer extended emission (EE). The recent discovery of a kilonova -- the radioactive glow of heavy elements made in neutron star mergers -- in the 50s-duration GRB 211211A further demonstrates that mergers can drive long, complex GRBs that mimic the collapsar population. Here we present a detailed temporal and spectral analysis of the high-energy emission of GRB 211211A. We demonstrate that the emission has a purely synchrotron origin, with both the peak and cooling frequencies moving through the γ\gamma-ray band down to the X-rays, and that the rapidly-evolving spectrum drives the EE signature at late times. The identification of such spectral evolution in a merger-GRB opens avenues for diagnostics of the progenitor type.

Keywords

Cite

@article{arxiv.2205.05008,
  title  = {The case for a minute-long merger-driven gamma-ray burst from fast-cooling synchrotron emission},
  author = {B. P. Gompertz and M. E. Ravasio and M. Nicholl and A. J. Levan and B. D. Metzger and S. R. Oates and G. P. Lamb and W. Fong and D. B. Malesani and J. C. Rastinejad and N. R. Tanvir and P. A. Evans and P. G. Jonker and K. L. Page and A. Pe'er},
  journal= {arXiv preprint arXiv:2205.05008},
  year   = {2022}
}

Comments

Author's final submitted version. 6 figures, 5 tables. The Supplementary Information .tex file is included